On Adaptation of Third Kind Boundary Conditions for Grid Models of Nonstationary Heat Exchange

P. Zhukov, A. Glushchenko, A. Fomin
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Abstract

The non-stationary heat exchange (heating) process is a typical kind of technological operation in metallurgy. The most common technological units for such operation are continuous heating furnaces, in which steel billets are heated in the course of their movement through the furnace. The billets have different inner chemical structures and physical characteristics, so different values of heating parameters are needed (heating time, setpoint temperature, etc.). Usually, to find such optimal values, a model of transient heat conduction is used. The general problem of such models is the necessity to adapt them to the thermophysical parameters of each certain steel grade being heated inside the furnace. Usually adaptation processes is to find the dependence between the final billet temperature and the steel density, thermal capacity, and thermal conductivity. But, in addition to these independent variables, considering the non-stationarity of the heating processes, not only should the inner structure of the billets be taken into account, but also the heating environment parameters too. Adaptation to them is the scope of this research and closely related to the third kind boundary condition of nonstationary heat exchange. Generally, it means to find the value of the heat transfer coefficient, which is also non-stationary and depends on the temperatures of the heated material and heating medium. The result of the study is an approach based on the Nusselt number and the criterion equation, which allows to reduce the average error of the billets temperature prediction by 9.7 degrees Celsius.
非平稳换热网格模型第三类边界条件的自适应研究
非稳态热交换(加热)过程是一种典型的冶金工艺操作。这种操作最常见的技术单元是连续加热炉,其中钢坯在通过炉子的运动过程中被加热。钢坯具有不同的内部化学结构和物理特性,因此需要不同的加热参数值(加热时间、设定温度等)。通常,要找到这样的最优值,需要使用瞬态热传导模型。这类模型的一般问题是必须使其适应炉内加热的每种钢种的热物性参数。通常适应过程是找到最终钢坯温度与钢密度、热容量和导热系数之间的依赖关系。但是,除了这些自变量外,考虑到加热过程的非平稳性,不仅要考虑钢坯的内部结构,还要考虑加热环境参数。对它们的适应是本研究的范围,与第三类非定常换热边界条件密切相关。一般是指求换热系数的值,换热系数也是非平稳的,取决于被加热材料和加热介质的温度。研究结果是一种基于努塞尔数和标准方程的方法,可以将钢坯温度预测的平均误差降低9.7摄氏度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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